Sequencing and functional analysis of the SNRPN promoter: in vitro methylation abolishes promoter activity.
暂无分享,去创建一个
J. Sutcliffe | R. Gibbs | A. Beaudet | M. Nakao | Y. Shen | A. Huq | Y. Shen
[1] W. Doerfler,et al. Imprinted segments in the human genome: different DNA methylation patterns in the Prader-Willi/Angelman syndrome region as determined by the genomic sequencing method. , 1997, Human molecular genetics.
[2] A. Poustka,et al. Imprint switching on human chromosome 15 may involve alternative transcripts of the SNRPN gene , 1996, Nature Genetics.
[3] Jerzy Jurka,et al. Censor - a Program for Identification and Elimination of Repetitive Elements From DNA Sequences , 1996, Comput. Chem..
[4] D. J. Driscoll,et al. Gene structure, DNA methylation, and imprinted expression of the human SNRPN gene. , 1996, American journal of human genetics.
[5] S. Tilghman,et al. Disruption of imprinting caused by deletion of the H19 gene region in mice , 1995, Nature.
[6] Bernhard Horsthemke,et al. Inherited microdeletions in the Angelman and Prader–Willi syndromes define an imprinting centre on human chromosome 15 , 1995, Nature Genetics.
[7] M. Bartolomei,et al. A paternal–specific methylation imprint marks the alleles of the mouse H19 gene , 1995, Nature Genetics.
[8] D. Barlow,et al. Characteristics of imprinted genes , 1995, Nature Genetics.
[9] U. Francke,et al. Identification of a novel paternally expressed gene in the Prader-Willi syndrome region. , 1994, Human molecular genetics.
[10] D. Ledbetter,et al. Deletions of a differentially methylated CpG island at the SNRPN gene define a putative imprinting control region , 1994, Nature Genetics.
[11] J E Hewitt,et al. Analysis of the tandem repeat locus D4Z4 associated with facioscapulohumeral muscular dystrophy. , 1994, Human molecular genetics.
[12] R. Nicholls,et al. New insights reveal complex mechanisms involved in genomic imprinting. , 1994, American journal of human genetics.
[13] R. Gibbs,et al. Adaptor-based uracil DNA glycosylase cloning simplifies shotgun library construction for large-scale sequencing. , 1994, Analytical biochemistry.
[14] D. Ledbetter,et al. Imprinting analysis of three genes in the Prader-Willi/Angelman region: SNRPN, E6-associated protein, and PAR-2 (D15S225E). , 1994, Human molecular genetics.
[15] S. Leff,et al. Maternal imprinting of human SNRPN, a gene deleted in Prader–Willi syndrome , 1994, Nature Genetics.
[16] R. Gibbs,et al. PCR Based Strategies for Gap Closure in Large-scale Sequencing Projects , 1994 .
[17] A. Minden,et al. The minimal self-sufficient element in a murine G+C-rich promoter is a large element with imperfect dyad symmetry. , 1993, Proceedings of the National Academy of Sciences of the United States of America.
[18] D. J. Driscoll,et al. Functional imprinting and epigenetic modification of the human SNRPN gene. , 1993, Human molecular genetics.
[19] D. Kaiser,et al. Epigenetic mechanisms underlying the imprinting of the mouse H19 gene. , 1993, Genes & development.
[20] D. Barlow,et al. Maternal-specific methylation of the imprinted mouse Igf2r locus identifies the expressed locus as carrying the imprinting signal. , 1993, Cell.
[21] D. Barlow,et al. Maternal-specific methylation of the imprinted mouse Igf2r locus identifies the expressed locus as carrying the imprinting signal , 1993, Cell.
[22] Adrian Bird,et al. The essentials of DNA methylation , 1992, Cell.
[23] M. Lerner,et al. The gene encoding the small nuclear ribonucleoprotein-associated protein N is expressed at high levels in neurons. , 1992, The Journal of biological chemistry.
[24] E. Uberbacher,et al. Locating protein-coding regions in human DNA sequences by a multiple sensor-neural network approach. , 1991, Proceedings of the National Academy of Sciences of the United States of America.
[25] A. Razin,et al. DNA methylation and gene expression , 1991, Microbiological reviews.
[26] Adrian Bird,et al. DNA methylation inhibits transcription indirectly via a methyl-CpG binding protein , 1991, Cell.
[27] D. Baltimore,et al. Transcriptional activation by Sp1 as directed through TATA or initiator: specific requirement for mammalian transcription factor IID. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[28] M. Jannatipour,et al. Primary structure of a human small nuclear ribonucleoprotein polypeptide as deduced by cDNA analysis. , 1989, The Journal of biological chemistry.
[29] M. Ehrlich,et al. Hypermethylation of human DNA sequences in embryonal carcinoma cells and somatic tissues but not in sperm. , 1987, Nucleic acids research.
[30] J. Northrop,et al. Lipofection: a highly efficient, lipid-mediated DNA-transfection procedure. , 1987, Proceedings of the National Academy of Sciences of the United States of America.
[31] J. Sambrook,et al. Molecular Cloning: A Laboratory Manual , 2001 .